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Investigation of oxygen self-diffusion in PuO2 by combining molecular dynamics with thermodynamic calculations

机译:结合分子动力学和热力学计算研究PuO2中氧的自扩散

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In the present work, the defect properties of oxygen self-diffusion in PuO2 are investigated over a wide temperature (300-1900 K) and pressure (0-10 GPa) range, by combining molecular dynamics simulations and thermodynamic calculations. Based on the well-established cB Omega thermodynamic model which connects the activation Gibbs free energy of diffusion with the bulk elastic and expansion properties, various point defect parameters such as activation enthalpy, activation entropy, and activation volume were calculated as a function of T and P. Molecular dynamics calculations provided the necessary bulk properties for the proper implementation of the thermodynamic model, in the lack of any relevant experimental data. The estimated compressibility and the thermal expansion coefficient of activation volume are found to be more than one order of magnitude greater than the corresponding values of the bulk plutonia. The diffusion mechanism is discussed in the context of the temperature and pressure dependence of the activation volume.
机译:在目前的工作中,通过结合分子动力学模拟和热力学计算,研究了在宽温度(300-1900 K)和压力(0-10 GPa)范围内PuO2中氧自扩散的缺陷性质。基于建立良好的cB Omega热力学模型,该模型将激活Gibbs扩散自由能与体积弹性和膨胀特性联系起来,计算了各种点缺陷参数,如激活焓,激活熵和激活体积,它们是T和T的函数。 P.在没有任何相关实验数据的情况下,分子动力学计算为正确实施热力学模型提供了必要的整体性质。发现活化体积的估计可压缩性和热膨胀系数比散装二氧化the的相应值大一个数量级。在激活体积的温度和压力依赖性的背景下讨论了扩散机理。

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